Blue Light added with Red LEDs Enhance Growth Characteristics

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Blue Light added with Red LEDs Enhance Growth Characteristics ( blue-light-added-with-red-leds-enhance-growth-characteristic )

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Plants 2019, 8, 93 11 of 12 12. Stutte, G.W.; Edney, S.; Skerritt, T. Photoregulation of bioprotectant content of red leaf lettuce with light-emitting diodes. HortScience 2009, 44, 79–82. [CrossRef] 13. Heo, J.W.; Kang, D.H.; Bang, H.S.; Hong, S.G.; Chun, C.; Kang, K.K. Early growth, pigmentation, protein content, and phenylalanine ammonia-lyase activity of red curled lettuces grown under different lighting conditions. Korean J. Hortic. Sci. Technol. 2012, 30, 6–12. [CrossRef] 14. Johkan, M.K.; Shoji, F.; Goto, S.; Hashida, S.; Yoshihara, T. Blue light-emitting diode light irradiation of seedlings improves seedling quality and growth after transplanting in red leaf lettuce. HortScience 2010, 45, 1809–1814. [CrossRef] 15. Son, K.H.; Oh, M.M. Leaf shape, growth, and antioxidant phenolic compounds of two lettuce cultivars grown under various combinations of blue and red light-emitting diodes. HortScience 2013, 48, 988–995. [CrossRef] 16. Piovene, C.; Orsini, F.; Bosi, S.; Sanoubar, R.; Bregola, V.; Dinelli, G.; Gianquinto, G. Optimal red:blue ratio in led lighting for nutraceutical indoor horticulture. Sci. Hortic. 2015, 193, 202–208. [CrossRef] 17. Gangadhar, B.H.; Mishra, R.K.; Pandian, G.; Park, S.W. Comparative study of color, pungency, and biochemical composition in chili pepper (Capsicum annuum L.) under different light-emitting diode treatments. HortScience 2012, 47, 1729–1735. [CrossRef] 18. Lisiewska, Z.; Kmiecik, W.; Ge ̨bczyn ́ski, P.; Sobczyn ́ska, L. Amino acid profile of raw and as-eaten products of spinach (Spinacia oleracea L.). Food Chem. 2011, 126, 460–465. [CrossRef] 19. Becker, C.; Klaering, H.-P.; Kroh, L.W.; Krumbein, A. Cool-cultivated red leaf lettuce accumulates cyanidin-3-O-(6”-O-malonyl)-glucoside and caffeoylmalic acid. Food Chem. 2014, 146, 404–411. [CrossRef] 20. Schmidt, S.; Zietz, M.; Schreiner, M.; Rohn, S.; Kroh, L.W.; Krumbein, A. Genotypic and climatic influences on the concentration and composition of flavonoids in kale (Brassica oleracea var. sabellica). Food Chem. 2010, 119, 1293–1299. [CrossRef] 21. Lefsrud, M.G.; Kopsell, D.A.; Sams, C.E. Irradiance from distinct wavelength lightemitting diodes affect secondary metabolites in kale. HortScience. 2008, 43, 2243–2244. [CrossRef] 22. Singletary, K.W. Basil: A brief summary of potential health benefits. Nutr. Today 2018, 53, 92–97. [CrossRef] 23. Jovicich, E.; VanSickle, J.J.; Cantliffe, D.J.; Stoffella, P.J. Greenhouse-grown colored peppers: A profitable alternative for vegetable production in Florida? HortTechnology 2005, 15, 355–369. [CrossRef] 24. Massa, G.; Graham, T.; Haire, T.; Flemming, C., II; Newsham, G.; Wheeler, R. Light emitting diode light transmission through leaf tissue of seven different crops. HortScience 2015, 50, 501–506. [CrossRef] 25. Muneer, S.; Kim, E.J.; Park, J.S.; Lee, J.H. Influence of green, red and blue light emitting diodes on multiprotein complex proteins and photosynthetic activity under different light intensities in lettuce leaves (Lactuca Sativa L.). Int. J. Mol. Sci. 2014, 15, 4657–4670. [CrossRef] 26. Lichtenthaler, H.K. Chlorophylls and carotenoids: Pigments of photosynthetic biomembranes. Methods Enzymol. 1987, 148, 350–382. 27. Naznin, M.T.; Maeda, T.; Morita, N. Antioxidant function of E- and Z-ajoene derived from Japanese garlic. Int. J. Food Prop. 2010, 13, 821–829. [CrossRef] 28. Sharma, O.P.; Bhat, T.K. Analytical methods DPPH antioxidant assay revisited. Food Chem. 2009, 113, 1202–1205. [CrossRef] 29. Ward, J.M.; Cufr, C.M.; Denzel, M.A.; Neff, M.M. The dof transcription factor OBP3 modulates Phytochrome and cryptochrome signaling in arabidopsis. Plant Cell 2005, 17, 475–485. [CrossRef] 30. Poudel, P.R.; Kataoka, I.; Mochioka, R. Effect of red- and blue-light-emitting diodes on growth and morphogenesis of grapes. Plant Cell Tissue Organ Cult. 2008, 92, 147–153. [CrossRef] 31. Chatterjee, M.; Sharma, P.; Khurana, J.P. Cryptochrome 1 from Brassica napus is up-regulated by blue light and controls hypocotyl/stem growth and anthocyanin accumulation. Plant Physiol. 2006, 141, 61–74. [CrossRef] 32. Brown, C.S.; Schuerger, A.C.; Sager, J.C. Growth and photomorphogenesis of pepper plants under red light-emitting diodes with supplemental blue or far-red lighting. J. Am. Soc. Hortic. Sci. 1995, 120, 808–813. [CrossRef] 33. Liu, X.Y.; Chang, T.T.; Guo, S.R.; Xu, Z.G.; Li, J. Effect of different light quality of LED on growth and photosynthetic cheracter in cherry tomato seedling. Acta Hortic. 2011, 907, 325–330. [CrossRef] 34. Ahmad, M.; Cashmore, A.R. The blue-light receptor cryptochrome 1 shows functional dependence on phytochrome A of ohytochrome B in Arabidopsis thaliana. Plant J. 1997, 11, 421–427. [CrossRef]

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